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仪器/ 产品中心/ 行业专用仪器/ 其它/ 其它行业专用仪器/ 可移动式高通量紫外-可见光荧光仪——MULTIPLEX ON-THE-GO
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可移动式高通量紫外-可见光荧光仪——MULTIPLEX ON-THE-GO

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详细介绍

主要功能

高通量获取叶绿素、类黄酮、花青素、氮素状态及吸收状况、冠层孔隙度等多个植物表型数据和 12 种原始荧光信号。


测量参数

氮平衡指数

叶绿素指数

类黄酮指数

花青素指数

冠层孔隙度

氮素吸收利用情况

12 种荧光信号


应用领域

品种筛选

植物生理学

果实成熟期判定

化肥、农药筛选


主要技术参数

Multiplex 技术参数

测量材料:叶片和果实

测量面积:80 cm2(可定制其他面积)

采集频率:60 Hz(ZD可达 200 Hz)

测量距离:200 mm

工作温度:5 - 45 摄氏度

供电:通过 FA-BOX

输出:通过 RS232 至 FA-BOX

重量:3 kg

尺寸:170 * 170 mm

防水等级:IP65

FA-BOX 技术参数

数据分类:两种(通过短按和长按键实现)

可兼容不同型号的 GPS、RFID 系统或其他相关传感器

连接:1 个 Multiplex;1 个 GPS;4 个 RS232,1 个可选的 CAN

供电:12V DC(可通过车、蓄电池等供电)

用户界面:包含 4 个功能键,以及警告提醒

存储:USB(16 G)

重量:600 g

尺寸:150 * 105 * 55 mm

防水等级:IP65


选购指南

配置:

Multiplex 传感器,FA-BOX 数采和 GPS。


0000.png

Multiplex On-the-go 系统组成


数据格式:


数据格式.png



应用案例

1. 果实测量


果实测量.png

Multiplex On-the-go 果实测量

果实特性实时描述,制作收获期地图,指导选择性收获。


2. 叶片测量


叶片测量.png

Multiplex On-the-go 叶片测量

冠层孔隙度调查;氮素状态、吸收情况调查;缺绿病调查;胁迫区域鉴定。


3. 集成至表型平台测量


表型平台测量.png

Multiplex On-the-go 集成至表型平台测量

高通量获取叶绿素、类黄酮、花青素、氮素状态等植物表型测量参数。


4. 施肥方案筛选

施肥方案对比.jpg

不同施肥方案对比



产地:法国 Force-A



参考文献

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Bramley RGV, Le Moigne M, Evain S, Ouzman J, Florin L, Fadaili EM, Hinze CJ, Cerovic ZG(2011). On–the–go sensing of grape berry anthocyanins during commercial harvest: development and prospects. Aust. J. Grape Wine Res. doi:10.1111/j.1755–0238.2011.00158.x. (Mx)

Cerovic ZG, Goutouly JP, Hilbert G, Destrac Irvine A, Martinon V, Moise N(2009). Mapping winegrape quality attributes using portable fluorescence–based sensors. In FRUTIC 09. Conception, Chile. (Ed. S Best) (Progap INIA, Chillian, Chile), 301–310. (Mx)

Zhang Y, Tremblay N, Zhu J(2012). A first comparison of Multiplex® for the assessment of corn nitrogen status. Journal of Food, Agriculture & Environment, 10(1), 1008–1016. (Mx)

Baluja J, Diago M.P, Goovaerts P, Tardaguila J(2012). Assessment of the spatial variability of anthocyanins in grapes using a fluorescence sensor: relationships with vine vigour and yield. Precision Agri., doi: 10.1007/s11119–012–9261–x. (Mx)

Agati G, D'Onofrio C, Ducci E, Cuzzola A, Remorini D, Tuccio L, Lazzini F, Mattii G(2013). Potential of a multiparametric optical sensor for determining in situ the maturity components of red and white vitis vinifera wine grapes. J Agric Food Chem. (Mx)

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Baluja J, Diago MP, Goovaerts P, Tardaguila J(2012). Spatio–temporal dynamics of grape anthocyanin accumulation in a Tempranillo vineyard monitored by proximal sensing Australian Journal of Grape and Wine Research, 18(2), 173–182. (Mx)

Giovanni Agatia, Lara Foschi, Nicola Grossi, Marco Volterrani(2015). In field non-invasive sensing of the nitrogen status in hybrid bermudagrass (Cynodon dactylon × C. transvaalensis Burtt Davy) by a fluorescence-based method. European Journal of Agronomy, 63, 89-96.

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Bramley R(2012). Mixed fortunes in crop quality sensing. 15th Symposium on Precision Agriculture in Australasia, Mildura, 22-26.

Cerovic ZG, Ben Ghozlen N, Milhade C, Obert M, Debuisson S, Le Moigne M(2015). Non-destructive diagnostic test for nitrogen nutrition of grapevine (Vitis vinifera L.) based on Dualex leaf-clip measurements in the field. Journal of Agricultural and Food Chemistry, 63, 3669–3680. (Dx)

Agati G, Foschi L, Grossi N, Guglielminetti L, Cerovic ZG, Volterrani M(2013). Fluorescence–based versus reflectance proximal sensing of nitrogen content in Paspalum vaginatum and Zoysia matrella turfgrasses. European Journal of Agronomy, 45, 39–51. (Mx)

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